The present invention discloses a drop-before-add optical routing and switching system. The drop-before-add optical routing and switching system includes an input waveguide for carrying a multiplexed optical signal comprising optical signals transmitted over a plurality of wavelength channels represented by λ1, λ2, λ3, . . . , λN−1 and λN, where N is a positive integer wherein the input waveguide extending over a first direction. The drop-before-add optical routing and switching system further includes a plurality of second direction waveguides extending over a second direction and intersecting at N intersections with the input waveguide. The drop-before-add optical routing and switching system further includes a plurality of wavelength selective grating switches each disposed on one of the N intersections for selectively transmitting an optical signal of a selected wavelength into an associated one of the second direction waveguide.
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15. A drop-before-add switch comprising:
an input waveguide carrying an optical signal comprised of a plurality of wavelengths;
a plurality of secondary waveguides intersecting with said input waveguide; and
a plurality of wavelength selective grating switches disposed at the intersection of said plurality of secondary waveguides and said input waveguide, said grating switches selectively operable to couple an associated predetermined wavelength from said plurality of wavelengths from said input waveguide to an associated one of said plurality of secondary waveguides, said plurality of wavelength selective grating switches being movable to engage in an on state and disengage in an off state,
further wherein the said input waveguide and secondary waveguides are formed from the same material.
12. A drop-before-add optical routing and switching system comprising:
an input waveguide carrying a multiplexed optical signal comprising a plurality of wavelength channels;
a plurality of wavelength selective grating switches disposed on said input waveguide for selectively transmitting an optical signal of a selected wavelength to a switching matrix whereby optical signals of wavelengths not transmitted by said wavelength selective grating switches are dropped, said plurality of wavelength selective grating switches being movable to engage in an on state and disengage in an off state; and
each of said wavelength selective grating switches further comprising a bragg grating for wavelength selectively transmitting an optical signal of a central wavelength particular to said bragg gratings from said input waveguide to an intersecting waveguide.
1. A drop-before-add optical routing and switching system comprising:
an input waveguide for carrying a multiplexed optical signal including over a plurality of wavelength channels represented by λ1, λ2, λ3, . . . , λN−1 and λN, wherein said input waveguide extends over a first direction;
a plurality of second direction waveguides extending over a second direction and intersecting at N intersections with said input waveguide; and
a plurality of wavelength selective grating switches disposed on said N intersections for selectively transmitting an optical signal of a selected wavelength into an associated one of said second direction waveguides for transmitting to a switching matrix for adding optical signals therefrom, said plurality of wavelength selective grating switches being movable to engage in an on state and disengage in an off state;
further wherein said input waveguide carries a dropped optical signal consisting of optical signals of wavelengths not selected by said grating switches, further wherein the said first direction waveguides and second direction waveguides are formed from the same material.
2. The drop-before-add optical routing and switching system of
said input waveguide further includes an extension waveguide extending from said input waveguide and intersecting at N extension-intersections with said plurality of second direction waveguides;
a second set of wavelength selective grating switches disposed on said N extension-intersections for wavelength-selectively transmitting a dropped optical signal of a selected wavelength into an associated waveguide.
3. The drop-before-add optical routing and switching system of
an add-signal waveguide intersecting at N intersections with said plurality of second direction waveguides, said add-signal waveguide carrying an add optical signal; and
a second set of wavelength selective grating switches each disposed on one of said N intersections of said add-signal waveguide for wavelength-selectively transmitting an optical signal of a selected wavelength into said switching matrix as an add signal.
4. The drop-before-add optical routing and switching system of
a dropped-signal waveguide for intersecting at N intersections with said plurality of second direction waveguides; and
a second set of wavelength selective grating switches each disposed on one of said N intersections for wavelength-selectively transmitting a dropped optical signal of a selected wavelength into an associated waveguide.
5. The drop-before-add optical routing and switching system of
an add-signal waveguide extending over said first direction for intersecting at N intersections with said plurality of second direction waveguides, said add-signal waveguide carrying an add optical signal; and
a second set of wavelength selective grating switches each disposed on one of said N intersections of said add-signal waveguide for wavelength-selectively transmitting an optical signal of a selected wavelength into said switching matrix as an add signal.
6. The drop-before-add optical routing and switching system of
an add-signal waveguide intersecting at N intersections with said plurality of second direction waveguides, said add-signal waveguide carrying an add optical signal; and
a second set of wavelength selective grating switches each disposed on one of said N intersections of said add-signal waveguide for wavelength-selectively transmitting an optical signal of a selected wavelength into said switching matrix as an add signal.
7. The drop-before-add optical routing and switching system of
a residual input-signal optical port disposed on said input waveguide for connecting and transmitting a residual input optical signal to an optical device.
8. The drop-before-add optical routing and switching system of
each of said plurality of wavelength selective grating switches further comprising bragg gratings provided for wavelength selectively transmitting an optical signal of a central wavelength particular to said bragg gratings.
9. The drop-before-add optical routing and switching system of
each of said plurality of wavelength selective grating switches further comprise a coupling waveguide having a first set of bragg gratings coupled to said input waveguide and a second set of bragg gratings coupled to said one of said second direction waveguides; and
said first set of bragg gratings for wavelength selectively transmitting an optical signal of a central wavelength particular to said first set of bragg gratings from said input waveguide to said coupling waveguide and said second set of bragg gratings for transmitting said optical signal of a central length particular to said second set of bragg gratings from said coupling waveguide to an intersecting waveguide.
10. The drop-before-add optical routing and switching system of
a second input waveguide for receiving a second multiplexed optical signal comprising a plurality of wavelength channels λ1′, λ2′, λ3′, . . . , λN−1′ and λN′;
a plurality of additional second direction waveguides intersecting at additional N intersections with each of said input waveguide and said second input waveguide; and
a second set of wavelength selective grating switches each disposed on one of said N intersections for selectively transmitting an optical signal of a selected wavelength into an associated one of said second direction waveguides for transmitting to a switching matrix for adding optical signals therefrom, and for transmitting a dropped optical signal through said input waveguide and said second input waveguide.
11. The drop-before-add optical routing and switching system of
said input waveguide and said second input waveguide each having an output end for merging into a merged drop output line.
13. The drop-before-add optical routing and switching system of
each of said wavelength selective grating switches further comprise a set of wavelength-specific bragg gratings surrounded by a refractive-index adjustable medium for selectively switching off and concealing said bragg grating by adjusting a refractive index of said refraction-index adjustable medium.
14. The drop-before-add optical routing and switching system of
each of said wavelength selective grating switches further comprise a movable bragg grating provided for wavelength selectively transmitting an optical signal of a central wavelength particular to said bragg grating from said input waveguide to said intersecting waveguide whereby said wavelength selective grating switch is on/off switchable.
18. The switch of
an add waveguide that intersects at least one of said plurality of secondary waveguides at a position subsequent to the intersection of said input waveguide and said secondary waveguides, said add waveguide carrying an add optical signal comprised of a plurality of wavelengths; and
an add grating switch located at the intersection of said add waveguide and said at least one of said plurality of secondary waveguides, said add grating switch operable to selectively couple one of said plurality of wavelengths in said add optical signal to said at least one of said plurality of secondary waveguides.
19. The switch of
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Priority is hereby claimed under 35 U.S.C. § 120 to U.S. Provisional Patent Application Ser. No. 60/338,927 filed Dec. 10, 2001, U.S. Provisional Patent Application Ser. No. 60/346,066 filed Jan. 3, 2002, U.S. Provisional Patent Application No. 60/346,567 filed Jan. 8, 2002, U.S. Provisional Patent Application Ser. No. 60/373,803, filed Apr. 19, 2002, U.S. patent application No. 10/104,273 filed Mar. 22, 2002, and U.S. patent application Ser. No. 10/177,632 filed Jun. 19, 2002, each of which is incorporated by reference.
1. Field of the Invention
This invention relates generally to technologies for switching and routing optical wavelengths, and more particularly, this invention relates to waveguide grating-based wavelength selective switches and to add/drop devices comprising these wavelength selective switches.
2. Description of the Related Art
Optical wavelength division multiplexing (WDM) is a very important method used in modern optical fiber communication systems to dramatically increase the data transmission rate. In WDM systems, the whole optical beam consists of a number of different wavelength optical signals (wavelength channels). Each wavelength channel carries its own data information transmitted over the fiber. Therefore, with WDM technology a single optical fiber can transmit a number of distinguishable optical signals simultaneously. The result is a significant increase of effective bandwidth of the optical fiber and data transmission rate of the communication system.
In the WDM networks of the past, adding, dropping or cross connecting of individual wavelengths has involved conversion of the optical signal back to the electrical domain. Development of all-optical switches for applications ranging from add-drop functionality to large-scale cross-connects is key to adding intelligence to the optical layer of the optical networking systems. However, with the current technical limitations, all fiber network systems implemented with optical switches are still quite expensive.
To employ WDM technology in an optical communication system, optical demultiplexers, switches, multiplexers, and add/drop devices are important. Current state of the art in optical switching and signal transmission systems are limited to optical switching of an entire spectral range without wavelength differentiation or selection. Due to the lack of wavelength selection, an optical switch operation must frequently operate with a wavelength de-multiplexing and multiplexing device to achieve the transfer of optical signals of different wavelengths to different ports. This requirement leads to more complicated system configurations, higher manufacture and maintenance costs, and lower system reliability. For this reason, even though optical switches provide an advantage that the optical signals are switched entirely in the optical domain without converting them into the electrical domain, the cost and size of system cannot be easily reduced.
An add/drop device is used to inject (add) or extract (drop) one or more wavelength channels to or from a WDM network. Current optical add/drop devices usually consist of various types of optical switches and require optical multiplexers and demultiplexers, as shown in
Due to the requirement of optical multiplexers and demultiplexers as well as functionality limitation of these optical switches, optical add/drop devices built upon these optical switches usually suffer from complexity, inflexibility, and high cost.
The present invention can be better understood with reference to the following drawings. The components within the drawings are not necessarily to scale relative to each other, emphasis instead being placed upon clearly illustrating the principles of the present invention.
The present invention utilizes MEMS-actuated waveguide grating-based wavelength intelligent switches, as disclosed in our co-pending applications noted above. The switch is fabricated on a silicon substrate and the switching action is based on electrostatic bending of a part of waveguide with integrated Bragg gratings built in its cladding layer. The waveguide with integrated Bragg gratings, defined as a “bridge waveguide”, functions as a switching element. When the bridge waveguide is electrostatically bent close enough to an input waveguide, the wavelength which meets the Bragg phase-matching condition is coupled into the bridge waveguide. Through the bridge waveguide, the selected wavelength is then directed into a desired output waveguide.
Electrostatic bending of a waveguide with integrated Bragg grating can be implemented by simply applying a voltage between a silicon substrate and an electrode. This can greatly simplify the production of large-scale optical switches, compared with the prior art micro-mirror based MEMS approach. The integrated Bragg grating is formed by physically corrugating a waveguide. Thus, it does not reply upon a photorefractive index change, which enables building Bragg gratings in material that are not photorefractive and enhancing the grating strength. The integrated Bragg grating can be made smaller, and packed closer together than fiber-optic device. This opens the door for leveraging IC processing to fabricate the highly integrated optical switches.
Referring to
For simplicity of illustrations
Although the present invention has been described in terms of the presently preferred embodiment, it is to be understood that such disclosure is not to be interpreted as limiting. Various alternations and modifications will no doubt become apparent to those skilled in the art after reading the above disclosure. Accordingly, it is intended that the appended claims be interpreted as covering all alternations and modifications as fall within the true spirit and scope of the invention.
Xu, Ming, Ling, Peiching, Chen, Jinliang, Zhang, Jianjun
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